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Evaluation of the Mechanical and Thermal Properties Decay of PHBV/Sisal and PLA/Sisal Biocomposites at Different Recycle Steps

机译:PHBV /剑麻和PLA /剑麻生物复合材料在不同回收步骤的机械和热性能衰减评估

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摘要

The recyclability of polylactide acid (PLA) and poly (3-hydroxybutyrate-co-3-hydroxyvalerate (PHBV)-based biocomposites (10%, 20% and 30% by weight of sisal natural fibre) was evaluated in this work. The mechanical and thermal properties were initially determined and were shown to be similar to commodity plastics, such as polyethylene or polypropylene. Three recycle steps were carried out and the mechanical and thermal properties of recycled samples were evaluated and compared to the reference samples. The tensile modulus increased for recycled PLA biocomposites, whereas it was hardly influenced by recycling the PHBV biocomposites. The tensile strength and deformation at the break decreased notably after the first cycle in all cases. Although all the biocomposites became more brittle with recycling, the properties were conserved along until the third cycle, proving their promising recyclability. From the data obtained from the dynamic mechanical analysis, a slight decrease of the storage modulus of PHBV was observed, whereas PLA showed a significant decay of its properties at the 3rd recyclate. The PLA specimens were filled with sisal fibres until they reached 20%wt, which seemed also less subject to the embrittlement occurring along the recycling phase. The characteristic temperatures (glass transition-Tg, crystallization-Tc, melting-Tm) of all the biocomposites were not highly affected by recycling. Only a slight decrease on the melting point of the recycled PHBV was observed suggesting an overall good reprocessability. Moreover, the processing conditions lied in the same range as the conventional plastics which would facilitate potential joint valorization techniques.
机译:在这项工作中,对聚乳酸(PLA)和聚(3-羟基丁酸酯-co-3-羟基戊酸酯(PHBV)基生物复合材料(剑麻天然纤维重量的10%,20%和30%))的可回收性进行了评估。初步确定其热性能,并证明其与聚乙烯或聚丙烯等商品塑料相似,进行了三个回收步骤,评估了回收样品的机械性能和热性能,并将其与参考样品进行了比较,拉伸模量有所提高回收的PLA生物复合材料几乎不受PHBV生物复合材料的影响,在所有情况下,第一次循环后断裂强度和断裂变形均显着降低,尽管所有生物复合材料在回收后变得更脆,但其性能一直保持到第三周期,证明了它们的可回收性。从动态力学分析获得的数据来看,储藏量略有下降观察到PHBV的ge模量,而PLA在第三次循环中显示出其性能的显着下降。 PLA样品充满剑麻纤维,直到达到20%wt,这似乎也较少受到沿回收阶段脆化的影响。所有生物复合材料的特征温度(玻璃化转变温度,玻璃化转变温度,结晶温度,熔化温度)不受回收的影响很大。观察到再循环PHBV的熔点仅略微降低,表明总体良好的可再加工性。而且,加工条件处于与常规塑料相同的范围内,这将有利于潜在的联合增值技术。

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